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光热原子力显微镜与红外光谱联用(AFM-IR)对高消光系数材料的分析:以二氧化硅和硅酸盐玻璃为例

Photothermal Atomic Force Microscopy Coupled with Infrared Spectroscopy (AFM-IR) Analysis of High Extinction Coefficient Materials: A Case Study with Silica and Silicate Glasses.

作者信息

Lin Yen-Ting, He Hongtu, Kaya Huseyin, Liu Hongshen, Ngo Dien, Smith Nicholas J, Banerjee Joy, Borhan Ali, Kim Seong H

机构信息

Department of Chemical Engineering and Materials Research Institute, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Key Laboratory of Testing Technology for Manufacturing Process, Ministry of Education, Southwest University of Science and Technology, Mianyang, Sichuan 621010, China.

出版信息

Anal Chem. 2022 Apr 5;94(13):5231-5239. doi: 10.1021/acs.analchem.1c04398. Epub 2022 Mar 21.

DOI:10.1021/acs.analchem.1c04398
PMID:35312271
Abstract

Photothermal atomic force microscopy coupled with infrared spectroscopy (AFM-IR) brings significant value as a spatially resolved surface analysis technique for disordered oxide materials such as glasses, but additional development and fundamental understanding of governing principles is needed to interpret AFM-IR spectra, since the existing theory described for organic materials does not work for materials with high extinction coefficients for infrared (IR) absorption. This paper describes theoretical calculation of a transient temperature profile inside the IR-absorbing material considering IR refraction at the interface as well as IR adsorption and heat transfer inside the sample. This calculation explains the differences in peak positions and amplitudes of AFM-IR spectra from those of specular reflectance and extinction coefficient spectra. It also addresses the information depth of the AFM-IR characterization of bulk materials. AFM-IR applied to silica and silicate glass surfaces has demonstrated novel capability of characterizing subsurface structural changes and surface heterogeneity due to mechanical stresses from physical contacts, as well as chemical alterations manifested in surface layers through aqueous corrosion.

摘要

光热原子力显微镜与红外光谱联用技术(AFM-IR)作为一种用于玻璃等无序氧化物材料的空间分辨表面分析技术具有重要价值,但由于现有的针对有机材料的理论不适用于具有高红外吸收消光系数的材料,因此需要进一步发展并深入理解其 governing principles 以解释AFM-IR光谱。本文描述了考虑界面处红外折射以及样品内部红外吸收和热传递的红外吸收材料内部瞬态温度分布的理论计算。该计算解释了AFM-IR光谱的峰值位置和幅度与镜面反射光谱和消光系数光谱的差异。它还探讨了块状材料AFM-IR表征的信息深度。应用于二氧化硅和硅酸盐玻璃表面的AFM-IR已证明其具有表征由于物理接触产生的机械应力导致的亚表面结构变化和表面不均匀性,以及通过水腐蚀在表面层中表现出的化学变化的新能力。

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